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Michael Wand

11 accepted papers

2026

Multiple Token Divergence: Measuring and Steering In-Context Computation Density

ICLR 2026poster

Measuring the in-context computational effort of language models is a key challenge, as metrics like next-token loss fail to capture reasoning complexity. Prior methods based on latent state compressibility can be invasive and unstable. We propose Multiple Token Divergence (MTD), a simple measure of…

Cited by 0SourcecodeScholar
2021

Ringing ReLUs: Harmonic Distortion Analysis of Nonlinear Feedforward Networks

ICLR 2021poster

In this paper, we apply harmonic distortion analysis to understand the effect of nonlinearities in the spectral domain. Each nonlinear layer creates higher-frequency harmonics, which we call "blueshift", whose magnitude increases with network depth, thereby increasing the “roughness” of the output l…

Cited by 12SourcePDFScholar